Early Cenozoic increases in mammal diversity cannot be explained solely by expansion into larger body sizes
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[1] Alice C Hughes,et al. Extreme-sized anurans are more prone to climate-driven extinctions , 2022, Climate Change Ecology.
[2] Lindsay E. Zanno,et al. Comment on “The influence of juvenile dinosaurs on community structure and diversity” , 2022, Science.
[3] M. Benton,et al. The Angiosperm Terrestrial Revolution and the origins of modern biodiversity. , 2021, The New phytologist.
[4] D. Rabosky,et al. Rapid increase in snake dietary diversity and complexity following the end-Cretaceous mass extinction , 2021, PLoS biology.
[5] M. Wills,et al. Evolution and dispersal of snakes across the Cretaceous-Paleogene mass extinction , 2021, Nature Communications.
[6] D. Varricchio,et al. Revisiting Russell’s troodontid: autecology, physiology, and speculative tool use , 2021 .
[7] R. Benson,et al. Mammaliaform extinctions as a driver of the morphological radiation of Cenozoic mammals , 2021, Current Biology.
[8] S. K. Lyons,et al. The influence of juvenile dinosaurs on community structure and diversity , 2021, Science.
[9] Zhonghe Zhou,et al. The patterns and modes of the evolution of disparity in Mesozoic birds , 2021, Proceedings of the Royal Society B.
[10] A. Evans,et al. Skeleton of a Cretaceous mammal from Madagascar reflects long-term insularity , 2020, Nature.
[11] S. Maccracken,et al. Exceptional continental record of biotic recovery after the Cretaceous–Paleogene mass extinction , 2019, Science.
[12] Stephanie M. Smith,et al. Untangling the Multiple Ecological Radiations of Early Mammals. , 2019, Trends in ecology & evolution.
[13] S. K. Lyons,et al. Macroecological patterns of mammals across taxonomic, spatial, and temporal scales , 2019, Journal of Mammalogy.
[14] R. Benson,et al. Patterns of mammalian jaw ecomorphological disparity during the Mesozoic/Cenozoic transition , 2019, Proceedings of the Royal Society B.
[15] C. Strömberg,et al. Assembly of modern mammal community structure driven by Late Cretaceous dental evolution, rise of flowering plants, and dinosaur demise , 2019, Proceedings of the National Academy of Sciences.
[16] Asif U. Tamuri,et al. Rapid morphological evolution in placental mammals post-dates the origin of the crown group , 2019, Proceedings of the Royal Society B.
[17] R. Benson. Dinosaur Macroevolution and Macroecology , 2018, Annual Review of Ecology, Evolution, and Systematics.
[18] G. Wilson,et al. New Specimens of the Late Cretaceous Metatherian Eodelphis and the Evolution of Hard-Object Feeding in the Stagodontidae , 2018, Journal of Mammalian Evolution.
[19] J. Gauthier,et al. Early Evolution of Modern Birds Structured by Global Forest Collapse at the End-Cretaceous Mass Extinction , 2018, Current Biology.
[20] J. Alroy,et al. How should we estimate diversity in the fossil record? Testing richness estimators using sampling‐standardised discovery curves , 2018 .
[21] S. Magallón,et al. Thirty clues to the exceptional diversification of flowering plants , 2018, bioRxiv.
[22] P. Barrett,et al. Lepidosaurian diversity in the Mesozoic–Palaeogene: the potential roles of sampling biases and environmental drivers , 2018, Royal Society Open Science.
[23] Roger B. J. Benson,et al. Cope's rule and the adaptive landscape of dinosaur body size evolution , 2018 .
[24] Yu Wang,et al. Genomic evidence reveals a radiation of placental mammals uninterrupted by the KPg boundary , 2017, Proceedings of the National Academy of Sciences.
[25] D. Wake,et al. Phylogenomics reveals rapid, simultaneous diversification of three major clades of Gondwanan frogs at the Cretaceous–Paleogene boundary , 2017, Proceedings of the National Academy of Sciences.
[26] P. Upchurch,et al. Controlling for the species-area effect supports constrained long-term Mesozoic terrestrial vertebrate diversification , 2017, Nature Communications.
[27] G. Wilson,et al. A large carnivorous mammal from the Late Cretaceous and the North American origin of marsupials , 2016, Nature Communications.
[28] A. Chao,et al. iNEXT: an R package for rarefaction and extrapolation of species diversity (Hill numbers) , 2016 .
[29] J. Losos,et al. Ecological Opportunity and Adaptive Radiation , 2016 .
[30] E. Newham,et al. Therian mammals experience an ecomorphological radiation during the Late Cretaceous and selective extinction at the K–Pg boundary , 2016, Proceedings of the Royal Society B: Biological Sciences.
[31] O. Eriksson. Evolution of angiosperm seed disperser mutualisms: the timing of origins and their consequences for coevolutionary interactions between angiosperms and frugivores , 2016, Biological reviews of the Cambridge Philosophical Society.
[32] Graeme T. Lloyd,et al. Near-Stasis in the Long-Term Diversification of Mesozoic Tetrapods , 2016, PLoS biology.
[33] E. Jarvis,et al. The Origin and Diversification of Birds , 2015, Current Biology.
[34] Graeme T. Lloyd,et al. Evidence for a Mid-Jurassic Adaptive Radiation in Mammals , 2015, Current Biology.
[35] Graeme T. Lloyd,et al. The extinction of the dinosaurs , 2015, Biological reviews of the Cambridge Philosophical Society.
[36] J. L. Gittleman,et al. Patterns of maximum body size evolution in Cenozoic land mammals: eco-evolutionary processes and abiotic forcing , 2014, Proceedings of the Royal Society B: Biological Sciences.
[37] P. Upchurch,et al. Rates of Dinosaur Body Mass Evolution Indicate 170 Million Years of Sustained Ecological Innovation on the Avian Stem Lineage , 2014, PLoS biology.
[38] Ziheng Yang,et al. Neither phylogenomic nor palaeontological data support a Palaeogene origin of placental mammals , 2014, Biology Letters.
[39] P. D. Polly,et al. Mammal disparity decreases during the Cretaceous angiosperm radiation , 2013, Proceedings of the Royal Society B: Biological Sciences.
[40] C. Carbone,et al. Ecological Interactions in Dinosaur Communities: Influences of Small Offspring and Complex Ontogenetic Life Histories , 2013, PloS one.
[41] Philip L. Gibbard,et al. The ICS International Chronostratigraphic Chart , 2013 .
[42] G. Slater. Phylogenetic evidence for a shift in the mode of mammalian body size evolution at the Cretaceous‐Palaeogene boundary , 2013 .
[43] G. Wilson. Mammals across the K/Pg boundary in northeastern Montana, U.S.A.: dental morphology and body-size patterns reveal extinction selectivity and immigrant-fueled ecospace filling , 2013, Paleobiology.
[44] N. Campione,et al. Ecological modelling, size distributions and taphonomic size bias in dinosaur faunas: a comment on Codron et al. (2012) , 2013, Biology Letters.
[45] Andrea L. Cirranello,et al. The Placental Mammal Ancestor and the Post–K-Pg Radiation of Placentals , 2013, Science.
[46] Eoin J. O’Gorman,et al. Body Size Distribution of the Dinosaurs , 2012, PloS one.
[47] J. Gauthier,et al. Mass extinction of lizards and snakes at the Cretaceous–Paleogene boundary , 2012, Proceedings of the National Academy of Sciences.
[48] J. Loeuff. Paleobiogeography and biodiversity of Late Maastrichtian dinosaurs: how many dinosaur species went extinct at the Cretaceous-Tertiary boundary? , 2012 .
[49] Jonathan M. Chase,et al. Predators alter the scaling of diversity in prey metacommunities , 2012 .
[50] A. Chao,et al. Coverage-based rarefaction and extrapolation: standardizing samples by completeness rather than size. , 2012, Ecology.
[51] P. Upchurch,et al. The Completeness of the Fossil Record of Mesozoic Birds: Implications for Early Avian Evolution , 2012, PloS one.
[52] Mikael Fortelius,et al. Adaptive radiation of multituberculate mammals before the extinction of dinosaurs , 2012, Nature.
[53] T. J. Robinson,et al. Impacts of the Cretaceous Terrestrial Revolution and KPg Extinction on Mammal Diversification , 2011, Science.
[54] T. Tokaryk,et al. Mass extinction of birds at the Cretaceous–Paleogene (K–Pg) boundary , 2011, Proceedings of the National Academy of Sciences.
[55] T. Brodribb,et al. Fossil evidence for Cretaceous escalation in angiosperm leaf vein evolution , 2011, Proceedings of the National Academy of Sciences.
[56] D. Varricchio. A distinct dinosaur life history? , 2011 .
[57] Mark D. Uhen,et al. The Evolution of Maximum Body Size of Terrestrial Mammals , 2010, Science.
[58] J. Alroy. The Shifting Balance of Diversity Among Major Marine Animal Groups , 2010, Science.
[59] W. Godsoe,et al. Ecological opportunity and the origin of adaptive radiations , 2010, Journal of evolutionary biology.
[60] S. Tindall,et al. Predatory digging behavior by dinosaurs , 2010 .
[61] Helene C. Bovy,et al. When teeth and bones disagree: body mass estimation of a giant extinct rodent , 2010 .
[62] Marcello Ruta,et al. Dinosaurs and the Cretaceous Terrestrial Revolution , 2008, Proceedings of the Royal Society B: Biological Sciences.
[63] Zhe‐Xi Luo,et al. Transformation and diversification in early mammal evolution , 2007, Nature.
[64] D. Gower,et al. Global patterns of diversification in the history of modern amphibians , 2007, Proceedings of the National Academy of Sciences.
[65] K. Rose. The Beginning of the Age of Mammals , 2006 .
[66] M. Hahn,et al. Differences in structure and dynamics of Polynucleobacter communities in a temperate and a subtropical lake, revealed at three phylogenetic levels. , 2006, FEMS microbiology ecology.
[67] T. Schoener,et al. Predators increase the risk of catastrophic extinction of prey populations , 2001, Nature.
[68] G. Turner. The Ecology of Adaptive Radiation , 2001, Heredity.
[69] O. Eriksson,et al. Seed Size, Fruit Size, and Dispersal Systems in Angiosperms from the Early Cretaceous to the Late Tertiary , 2000, The American Naturalist.
[70] J. Alroy. The fossil record of North American mammals: evidence for a Paleocene evolutionary radiation. , 1999, Systematic biology.
[71] J. Alroy. Cope's rule and the dynamics of body mass evolution in North American fossil mammals. , 1998, Science.
[72] S. Wing,et al. Ecological aspects of the Cretaceous flowering plant radiation , 1998 .
[73] M. Fortelius,et al. Molar Tooth Diversity, Disparity, and Ecology in Cenozoic Ungulate Radiations , 1996, Science.
[74] J. Jernvall,et al. The hypocone as a key innovation in mammalian evolution. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[75] D. Jablonski. Extinctions in the fossil record , 1994 .
[76] S. Thompson,et al. The origin of eutherian mammals , 1987 .
[77] L. W. Alvarez. Experimental evidence that an asteroid impact led to the extinction of many species 65 million years ago. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[78] D. Raup,et al. Mass Extinctions in the Marine Fossil Record , 1982, Science.
[79] J. Krebs,et al. Arms races between and within species , 1979, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[80] S. Stanley,et al. AN EXPLANATION FOR COPE'S RULE , 1973, Evolution; international journal of organic evolution.
[81] R. Paine. Food Web Complexity and Species Diversity , 1966, The American Naturalist.
[82] I. Good. THE POPULATION FREQUENCIES OF SPECIES AND THE ESTIMATION OF POPULATION PARAMETERS , 1953 .
[83] Henry Fairfield Osborn,et al. The Law of Adaptive Radiation , 1902, The American Naturalist.
[84] Geologic Time Scale 2020 , 2020 .
[85] J. Alroy,et al. of Birmingham Diversity dynamics of Phanerozoic terrestrial tetrapods at the local community scale , 2019 .
[86] S. Hobbie,et al. Ecological Opportunity and Adaptive Radiation , 2016 .
[87] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[88] J. Bolt,et al. Changing patterns of ontogeny from osteolepiform fish through Permian tetrapods as a guide to the early evolution of land vertebrates , 2004 .
[89] 蒋志刚,et al. Week 11: macroecology , 2021 .
[90] J. Hunter. Key innovations and the ecology of macroevolution. , 1998, Trends in ecology & evolution.
[91] M. Carrano,et al. Scaling of reproductive turnover in archosaurs and mammals : why are large terrestrial mammals so rare? , 1991 .
[92] S. Legendre. ANALYSIS OF MAMMALIAN COMMUNITIES FROM THE LATE EOCENE AND OLIGOCENE OF SOUTHERN FRANCE , 1986 .
[93] S. A. Barnett,et al. The major features of evolution , 1955 .
[94] C. L. Fenton. The age of mammals , 1923 .
[95] A. W.. The Age of Mammals in Europe, Asia, and North America , 1911, Nature.